US20120157256A1 - Bearing oil supply structure for wind turbine generator - Google Patents
Bearing oil supply structure for wind turbine generator Download PDFInfo
- Publication number
- US20120157256A1 US20120157256A1 US13/327,980 US201113327980A US2012157256A1 US 20120157256 A1 US20120157256 A1 US 20120157256A1 US 201113327980 A US201113327980 A US 201113327980A US 2012157256 A1 US2012157256 A1 US 2012157256A1
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- US
- United States
- Prior art keywords
- lubricant oil
- oil
- bearing
- wind turbine
- turbine generator
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- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Abandoned
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- 239000000314 lubricant Substances 0.000 claims abstract description 248
- 238000005461 lubrication Methods 0.000 claims abstract description 35
- 238000003287 bathing Methods 0.000 claims description 19
- 230000007246 mechanism Effects 0.000 description 14
- 230000004048 modification Effects 0.000 description 9
- 238000012986 modification Methods 0.000 description 9
- 230000008878 coupling Effects 0.000 description 6
- 238000010168 coupling process Methods 0.000 description 6
- 238000005859 coupling reaction Methods 0.000 description 6
- 238000010586 diagram Methods 0.000 description 6
- 230000000903 blocking effect Effects 0.000 description 3
- 230000008901 benefit Effects 0.000 description 2
- 230000009471 action Effects 0.000 description 1
- 238000005452 bending Methods 0.000 description 1
- 238000007796 conventional method Methods 0.000 description 1
- 238000002347 injection Methods 0.000 description 1
- 239000007924 injection Substances 0.000 description 1
- 239000002184 metal Substances 0.000 description 1
- 230000000717 retained effect Effects 0.000 description 1
- 239000000243 solution Substances 0.000 description 1
- 238000013519 translation Methods 0.000 description 1
Images
Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16H—GEARING
- F16H57/00—General details of gearing
- F16H57/04—Features relating to lubrication or cooling or heating
- F16H57/0467—Elements of gearings to be lubricated, cooled or heated
- F16H57/0479—Gears or bearings on planet carriers
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F03—MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
- F03D—WIND MOTORS
- F03D15/00—Transmission of mechanical power
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F03—MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
- F03D—WIND MOTORS
- F03D15/00—Transmission of mechanical power
- F03D15/10—Transmission of mechanical power using gearing not limited to rotary motion, e.g. with oscillating or reciprocating members
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F03—MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
- F03D—WIND MOTORS
- F03D80/00—Details, components or accessories not provided for in groups F03D1/00 - F03D17/00
- F03D80/70—Bearing or lubricating arrangements
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16H—GEARING
- F16H57/00—General details of gearing
- F16H57/04—Features relating to lubrication or cooling or heating
- F16H57/0456—Lubrication by injection; Injection nozzles or tubes therefor
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16H—GEARING
- F16H57/00—General details of gearing
- F16H57/04—Features relating to lubrication or cooling or heating
- F16H57/048—Type of gearings to be lubricated, cooled or heated
- F16H57/0482—Gearings with gears having orbital motion
- F16H57/0486—Gearings with gears having orbital motion with fixed gear ratio
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F03—MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
- F03D—WIND MOTORS
- F03D9/00—Adaptations of wind motors for special use; Combinations of wind motors with apparatus driven thereby; Wind motors specially adapted for installation in particular locations
- F03D9/20—Wind motors characterised by the driven apparatus
- F03D9/25—Wind motors characterised by the driven apparatus the apparatus being an electrical generator
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F05—INDEXING SCHEMES RELATING TO ENGINES OR PUMPS IN VARIOUS SUBCLASSES OF CLASSES F01-F04
- F05B—INDEXING SCHEME RELATING TO WIND, SPRING, WEIGHT, INERTIA OR LIKE MOTORS, TO MACHINES OR ENGINES FOR LIQUIDS COVERED BY SUBCLASSES F03B, F03D AND F03G
- F05B2260/00—Function
- F05B2260/40—Transmission of power
- F05B2260/403—Transmission of power through the shape of the drive components
- F05B2260/4031—Transmission of power through the shape of the drive components as in toothed gearing
- F05B2260/40311—Transmission of power through the shape of the drive components as in toothed gearing of the epicyclic, planetary or differential type
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E10/00—Energy generation through renewable energy sources
- Y02E10/70—Wind energy
- Y02E10/72—Wind turbines with rotation axis in wind direction
Definitions
- the present invention relates to a bearing oil supply structure for a wind turbine generator applied to a bearing part of a planet gear box mechanism that steps up rotation of a rotor head and transfers the stepped-up rotation to a generator, for example.
- a wind turbine generator has a rotor head with blades that rotates under the force of wind hitting the blades, and a generator that is driven by the rotation of the rotor stepped up by a gear box to generate electric power.
- the gear box that steps up the rotation of the rotor head is a planetary-type planet gear box mechanism.
- the planetary-type planet gear box mechanism has a plurality of planet gears attached to a carrier that rotates integrally with an input shaft, and the planet gears revolves in engagement with a sun gear that rotates integrally with an output shaft and an internal gear fixed to a housing of the gear box. That is, the planetary-type planet gear box mechanism steps up the number of rotation of the carrier coupled to the input shaft (the numbers of revolutions of the planet gears) according to the gear ratio among the planet gears, the sun gear and the internal gear, and outputs the stepped up rotation from the output shaft coupled to the sun gear.
- each planet gear is rotatably supported on the carrier with a planet bearing interposed therebetween.
- the planet bearing is typically a roller bearing or a slide bearing.
- an oil supply channel is formed in the carrier to achieve lubrication in the upper rotation region where no oil bath can be used for lubrication.
- a lubrication system for a planet gear train is described in Japanese Translation of PCT International Application, Publication No. Hei 9-507284, for example.
- lubricant oil is supplied to a channel formed in a journal pin from the outer surface of the pin and then guided through the channel to the surroundings of the pin to achieve the outer surface of the pin and the bores of the planet gears.
- the bearing oil supply structure that has slide bearings as the planet bearings of the planetary-type planet gear box mechanism and a carrier having an oil supply channel formed therein for lubrication, such as the conventional one described above, has a problem that it is a complicated structure with a large number of components and is expensive.
- a wind turbine generator that incorporates slide bearings as planet bearings of a planetary-type planet gear box mechanism has a bearing oil supply structure that can be reduced in number of components through simplification of the oil supply system and in cost through simplification of the assembly.
- the present invention has been devised in view of the circumstances described above, and an object of the present invention is to provide a bearing oil supply structure for a wind turbine generator that can be reduced in number of components through simplification of the oil supply system thereof and in cost through simplification of the assembly thereof.
- the present invention provides the following solutions.
- a bearing oil supply structure is a bearing oil supply structure for a wind turbine generator comprising a planetary-type planet gear box having a planet gear that rotates about a planet pin fixed to a carrier with a slide bearing interposed therebetween, wherein lubrication of said slide bearing is achieved by supplying lubricant oil by using an oil bath in a lower rotation region and by supplying lubricant oil by injecting lubricant oil pressure-fed from a lubricant oil source through a nozzle in an upper rotation region.
- the bearing oil supply structure for a wind turbine generator since lubrication of the slide bearing is achieved by supplying lubricant oil by using an oil bath in a lower rotation region and by supplying lubricant oil by injecting lubricant oil pressure-fed from a lubricant oil source through a nozzle in an upper rotation region, the lubricant oil can be reliably supplied to achieve lubrication of the slide bearing in the lower rotation region and the upper rotation region by a simple structure with a reduced number of components.
- said planet pin has a main lubricant oil channel formed to extend in the axial direction form a lubricant oil inlet opening at one end and a radial lubricant oil channel formed to radially extend from the main lubricant oil channel to an outer pin surface, and the lubricant oil injected through said nozzle is supplied to a sliding part of said slide bearing through said lubricant oil inlet, said main lubricant oil channel and said radial lubricant oil channel.
- This allows the lubricant oil injected through the nozzle to be reliably supplied to the sliding surface of the slide bearing to achieve lubrication.
- a lubricant oil receiving pan is preferably provided at said lubricant oil inlet for receiving the lubricant oil injected through said nozzle and guiding the lubricant oil into said main lubricant oil channel. This allows the lubricant oil injected through the nozzle to be efficiently guided to the lubricant oil inlet and more reliably supplied to the sliding surface of the slide bearing to achieve lubrication.
- the lubricant oil injected through said nozzle may be directly supplied to said slide bearing.
- the lubricant oil injected through the nozzle can be supplied to the sliding surface of the slide bearing to achieve lubrication.
- a bearing oil supply structure is a bearing oil supply structure for a wind turbine generator comprising a planetary-type planet gear box having a planet gear that rotates about a planet pin fixed to a carrier with a slide bearing interposed therebetween, wherein lubrication of said slide bearing is achieved by supplying lubricant oil by using an oil bath in a lower rotation region and by supplying lubricant oil reserved during oil bathing in an upper rotation region.
- the bearing oil supply structure for a wind turbine generator since lubrication of the slide bearing is achieved by supplying lubricant oil by using an oil bath in a lower rotation region and by supplying lubricant oil reserved during oil bathing in an upper rotation region, the lubricant oil can be reliably supplied to achieve lubrication of the slide bearing in the lower rotation region and the upper rotation region by a simple structure with a reduced number of components.
- said planet pin can have a main lubricant oil channel formed to extend in the axial direction form a lubricant oil inlet opening at one end and a radial lubricant oil channel formed to radially extend from the main lubricant oil channel to an outer pin surface, and a lubricant oil receiving pan can be provided at said lubricant oil inlet, so that lubricant oil scooped and reserved in said lubricant oil receiving pan during said oil bathing can be supplied to a sliding part of said slide bearing through said lubricant oil inlet, said main lubricant oil channel and said radial lubricant oil channel.
- This allows the lubricant oil to be reliably reserved and supplied to the lower rotation region and the upper rotation region to achieve lubrication of the slide bearing by a simple structure with a reduced number of components.
- a lubricant oil receiving pan can be provided in the vicinity of an end of said slide bearing, and the lubricant oil scooped and reserved in said lubricant oil receiving pan during said oil bathing can be directly supplied to said slide bearing.
- the reserved lubricant oil can be supplied to a sliding surface of the slide bearing to achieve lubrication.
- said lubricant oil absorbing member has an oil supply groove formed to extend in the axial direction of said planet pin, and the oil supply groove opens at one end and is closed at the other end.
- the lubricant oil can be introduced into and absorbed in the lubricant oil absorbing member in a shorter time.
- a wind turbine generator according to a third aspect of the present invention comprises a bearing oil supply structure according to the first or second aspect of the present invention.
- the wind turbine generator according to the third aspect of the present invention is provided with the bearing oil supply structure according to the first or second aspect of the present invention, the wind turbine generator is reliably and durable and is manufactured at low cost.
- the present invention has a remarkable advantage that the wind turbine generator provided with the planetary-type planet gear box can be improved in reliability and durability at low cost.
- FIG. 1 is a cross-sectional view showing a configuration of essential parts of a bearing oil supply structure for a wind turbine generator according to a first embodiment of the present invention
- FIG. 2 is a schematic diagram showing an example of a planetary-type planet gear box to which the bearing oil supply structure for the wind turbine generator according to the present invention is applied;
- FIG. 3 is a schematic diagram showing a planetary-type planet gear box mechanism of the planetary-type planet gear box shown in FIG. 2 viewed from the axial direction thereof;
- FIG. 4 is a side view of the wind turbine generator provided with a gear box to which a planet bearing structure according to the present invention is applied;
- FIG. 5 is a schematic cross-sectional view showing a configuration of essential parts in a nacelle of the wind turbine generator shown in FIG. 4 ;
- FIG. 6 is a cross-sectional view showing a configuration of essential parts of a bearing oil supply structure for a wind turbine generator according to a second embodiment of the present invention.
- FIG. 7 is a cross-sectional view showing a configuration of essential parts of a bearing oil supply structure for a wind turbine generator according to a third embodiment of the present invention.
- FIG. 8 is a front view of a first modification of a lubricant oil receiving pan shown in FIG. 7 , viewed in the axial direction;
- FIG. 9 is a front view of a second modification of the lubricant oil receiving pan shown in FIG. 7 , viewed in the axial direction;
- FIG. 10 are diagrams showing essential parts of a bearing oil supply structure for a wind turbine generator according to a fourth embodiment of the present invention, in which FIG. 10( a ) is a front view of a planet pin viewed in the axial direction, and FIG. 10( b ) is a cross-sectional view taken along the line A-A in FIG. 10( a ); and
- FIG. 11 are diagrams showing essential parts of a modification of the planet pin and lubricant oil absorbing members shown in FIG. 10 , in which FIG. 11( a ) is a front view of the planet pin and the lubricant oil absorbing members viewed in the axial direction, and FIG. 11( b ) is a cross-sectional view taken along the line B-B in FIG. 11( a ).
- a bearing oil supply structure for a wind turbine generator according to the present invention is suitable for a gear box having a planetary-type planet gear box mechanism of a wind turbine generator and in particular a gear box that has slide bearings as planet bearings.
- FIG. 4 shows a wind turbine generator 1 comprising a tower (referred to also as a pole) 2 standing on a base B, a nacelle 3 installed on the upper end of the tower 2 , and a rotor head 4 provided on the front end of the nacelle 3 and supported so as to be rotatable about a substantially horizontal transverse axis of rotation.
- a wind turbine generator 1 comprising a tower (referred to also as a pole) 2 standing on a base B, a nacelle 3 installed on the upper end of the tower 2 , and a rotor head 4 provided on the front end of the nacelle 3 and supported so as to be rotatable about a substantially horizontal transverse axis of rotation.
- the nacelle 3 is provided with an anemometer 7 for measuring the wind speed in the surroundings and an anemoscope 8 for measuring the wind direction at appropriate positions on the outer periphery thereof (on an upper part thereof, for example).
- a gear box 10 coupled to the rotor head 4 by a main shaft 9 and a generator 12 coupled to an output shaft 11 of the gear box 10 are provided. That is, the number of rotations is stepped up as the rotation of the rotor head 4 is transferred to the output shaft 11 of the gear box 10 to which the rotor head 4 is coupled by the main shaft 9 .
- the generator 12 is driven at the number of rotations at the output side stepped up by the gear box 10 to generate electric power.
- a wind turbine controller 13 for controlling various operations of the wind turbine generator 1 .
- the gear box 10 described above is typically formed by a combination of a plurality of stages of step-up mechanisms.
- the number of rotations of the main shaft 9 serving as the input shaft is stepped up to the final number of output rotations of the output shaft 11 through a plurality of step-up stages.
- FIG. 2 is a schematic diagram showing an example of a gear box provided with the planetary-type planet gear box mechanism to which the bearing oil supply structure according to the present invention is applied, that is, a planetary-type planet gear box.
- a gear box provided with the planetary-type planet gear box mechanism to which the bearing oil supply structure according to the present invention is applied, that is, a planetary-type planet gear box.
- the part enclosed by the dashed line is a low speed stage of the planetary-type planet gear box (referred to as a planetary-type gear box hereinafter) that performs a first-stage step-up.
- the number of rotations of the main shaft 9 is first stepped up by the planetary-type gear box 20 and then stepped up by a middle speed stage 14 and a high speed stage 15 to the number of output rotations of the output shaft 11 .
- reference numeral 16 denotes a coupling shaft for transferring the output of the low speed stage of the planetary-type planet gear box to the middle speed stage 14
- reference numeral 17 denotes a coupling shaft for transferring the output of the middle speed stage 14 to the high speed stage 15 .
- FIG. 3 is a schematic diagram showing a planetary-type planet gear box mechanism of the planetary-type gear box 20 that performs the first-stage step-up of the gear box 10 , viewed from the axial direction, as an example of the planet gear device to which the bearing oil supply structure according to the present invention is applied.
- a carrier 21 of the planetary-type gear box 20 is coupled to the main shaft 9 and rotates with the main shaft 9 .
- three planet pins 30 are fixed to the carrier 21 , and a planet gear 40 is rotatably attached to each planet pin 30 with a slide bearing 50 and a bearing back metal 51 of the slide bearing 50 interposed therebetween.
- the three planet gears 40 are attached to the carrier 21 that rotates integrally with the main shaft 9 serving as the input shaft, and the planet gears 40 revolve in engagement with a sun gear 22 that rotates integrally with the coupling shaft (output shaft) 16 and an internal gear 24 fixed to a housing 23 .
- the planetary-type gear box 20 is a device that steps up the number of rotations of the carrier 21 coupled to the main shaft (input shaft) 9 (or the numbers of revolutions of the planet gears) according to the gear ratio among the planet gears 40 , the sun gear 22 and the internal gear 24 , and the stepped up number of revolutions is output to the two-stage step-up mechanism comprising the middle speed stage 14 and the high speed stage 15 through the coupling shaft 16 coupled to the sun gear 22 .
- the housing 23 in which the carrier 21 and the planet gears 40 revolve is filled with lubricant oil up to the level of an oil bath surface (lubricant oil surface) Lo shown in FIG. 3 , for example.
- the level of the oil bath surface Lo is preferably high enough for at least an axial bore inner surface 40 a of each revolving planet gear 40 to be immersed in the lubricant oil.
- the slide bearing 50 mounted on the axial bore inner surface 40 a of the planet gear 40 rotates with the planet gear 40 about the planet pin 30 fixed to the carrier 21 .
- the bearing oil supply structure according to this embodiment shown in FIG. 1 is applied to the planetary-type planet gear box in which the planet gears 40 rotates about the planet pins 30 fixed to the carrier 21 through the action of the slide bearings 50 .
- Lubrication of the slide bearings 50 is achieved by supplying lubricant oil by using an oil bath in a lower rotation region and by supplying lubricant oil by injecting lubricant oil pressure-fed from a lubricant oil source through a nozzle 60 in an upper rotation region.
- oil supply is achieved by injecting lubricant oil pressure-fed from a lubricant oil source (not shown, a lubricant oil pump provided on the nacelle 3 , for example) through the nozzle 60 fixed to the housing 23 .
- a lubricant oil source not shown, a lubricant oil pump provided on the nacelle 3 , for example
- one or more nozzles 60 are provided in the rotational direction (circumferential direction) so that the lubricant oil can be injected at appropriate times to the planet pins 30 , the planet gears 40 and the slide bearings 50 revolving in the space above the oil bath surface Lo in the housing 23 .
- the planet pin 30 has a main lubricant oil channel 31 extending in the axial direction from a lubricant oil inlet 31 a that opens at one end thereof and one or more radial lubricant oil channels 32 extending radially from the main lubricant oil channel 31 to an outer pin surface 30 a .
- the main lubricant oil channel 31 shown is formed on the central axis of the planet pin 30 , the lubricant oil inlet 31 a of the main lubricant oil channel 31 opens in the end closer to the carrier 21 , and an outlet opening of the main lubricant oil channel 31 formed in the end closer to the middle speed stage 14 is closed by a blocking member 31 b.
- the lubricant oil is injected through the nozzle 60 described above to the lubricant oil inlet 31 a of the main lubricant oil channel 31 of the planet pin 30 with these lubricant oil channels.
- the lubricant oil can be constantly injected through the nozzle 60
- the lubricant oil is preferably intermittently injected in synchronization with passage of the target lubricant oil inlet 31 a.
- the lubricant oil injected through the nozzle 60 enters the inside of the main lubricant oil channel 31 through the lubricant oil inlet 31 a and flows toward the outlet opening closed by the blocking member 31 b under the pressure of the injection. Then, the lubricant oil is supplied to the sliding part of the slide bearing 50 in contact with the outer pin surface 30 a through the radial lubricant oil channel 32 branched midway from the main lubricant oil channel 31 .
- lubrication is achieved by forced oil supply, which involves injecting the lubricant oil to the lubricant oil inlet 31 a through the nozzle 60 to supply the lubricant oil to between the outer pin surface 30 a and the inner surface of the slide bearing 50 through the radial lubricant oil channel 32 .
- lubrication of the slide bearings 50 is achieved by supplying the lubricant oil by using the oil bath in the lower rotation region and by supplying the lubricant oil by injecting the lubricant oil pressure-fed from the lubricant oil source through the nozzle 60 in the upper rotation region.
- lubrication can be reliably achieved by supplying the lubricant oil to the sliding surfaces of the slide bearings 50 by injecting the lubricant oil through the nozzle 60 . Therefore, when the planet gears 40 revolve in engagement with the internal gear 24 in the housing 23 , lubrication between the planet pins 30 and the slide bearings 50 is achieved with reliability. Since lubrication of the slide bearings 50 is achieved with reliability by a simple structure with a reduced number of components both in the lower rotation region and the upper rotation region, high reliability and high durability can be achieved.
- the lubricant oil is injected to the lubricant oil inlet 31 a through the nozzle 60 .
- the lubricant oil may be injected to the slide bearing 50 . If such a nozzle 60 A is used, lubrication is achieved by directly supplying oil to the sliding surface of the slide bearing 50 .
- the nozzle 60 A can be used by itself, the nozzle 60 A may be used in combination with the nozzle 60 according to the embodiment described above.
- FIG. 6 a wind turbine generator according to a second embodiment of the present invention will be described with reference to FIG. 6 .
- the same components as those in the embodiment described above are denoted by the same reference numerals, and detailed descriptions thereof will be omitted.
- a lubricant oil receiving pan 70 is provided at the lubricant oil inlet 31 a for receiving the lubricant oil injected through a nozzle 60 B and guiding the lubricant oil into the main lubricant oil channel 31 .
- the lubricant oil receiving pan 70 has the shape of a gutter formed by bending a plate into a substantially L-shaped cross section, for example, so that the lubricant oil receiving pan 70 accumulates the lubricant oil injected downward through the nozzle 60 B with reliability and guides the lubricant oil into the main lubricant oil channel 31 .
- the lubricant oil receiving pan 70 can be V-shaped, arc-shaped or otherwise shaped to be bent toward the lubricant oil inlet 31 a , for example, in order that the accumulated lubricant oil can be guided to the sliding surface with reliability.
- the lubricant oil injected through the nozzle 60 B can be efficiently and reliably guided into the lubricant oil inlet 31 a and reliably supplied to the sliding surface of the slide bearing 50 to achieve lubrication.
- the direction of the nozzle 60 B is not particularly limited as far as the lubricant oil receiving pan 70 can reliably accumulate the lubricant oil, and the nozzle 60 B may be installed so as to inject the lubricant oil toward the lubricant oil inlet 31 a , as with the nozzle 60 shown in FIG. 1 , for example.
- FIGS. 7 to 9 a wind turbine generator according to a third embodiment of the present invention will be described with reference to FIGS. 7 to 9 .
- the same components as those in the embodiments described above are denoted by the same reference numerals, and detailed descriptions thereof will be omitted.
- lubrication of the slide bearings is achieved by supplying lubricant oil by using an oil bath in the lower rotation region and by supplying lubricant oil reserved during oil bathing in the upper rotation region. That is, in this embodiment, the forced lubrication by injecting the lubricant oil through the nozzle 60 described above is not performed.
- the same main lubricant oil channel 31 and radial lubricant oil channel 32 as those in the embodiment described above are formed in the planet pin 30 .
- a lubricant oil receiving pan 71 having a substantially L-shaped cross section is provided in an inverted orientation compared with the lubricant oil receiving pan 70 described above.
- the lubricant oil receiving pan 71 is intended to scoop the lubricant oil during oil bathing and therefore is open upward when immersed in the lubricant oil.
- the lubricant oil receiving pan 71 serves as a dipper to scoop and reserve the lubricant oil during oil bathing, and the lubricant oil scooped by and reserved in the lubricant oil receiving pan 71 flows into the main lubricant oil channel 31 through the lubricant oil inlet 31 a and then is supplied to the sliding surface of the slide bearing 32 through the radial lubricant oil channel 32 . That is, the lubricant oil receiving pan 71 in this embodiment is open upward during oil bathing to scoop the lubricant oil and reserve the lubricant oil to be supplied to the upper rotation region.
- the lubricant oil is supplied to the sliding parts of the slide bearings 50 through the lubricant oil inlet 31 a , the main lubricant oil channel 31 and the radial lubricant oil channel 32 , and no actuator such as a pump is needed. Therefore, the lubricant oil can be reliably reserved by a simple structure with a reduced number of components and can be reliably supplied both to the lower rotation region and the upper rotation region to achieve lubrication of the slide bearings 50 .
- the lubricant oil receiving pan 71 in this embodiment can also be replaced with a lubricant oil receiving pan 72 attached to the carrier 21 at a position close to one end of the slide bearing 50 .
- the lubricant oil receiving pan 72 is intended to supply the lubricant oil scooped and reserved during oil bathing directly to the slide bearing as with the nozzle 60 A described above.
- the lubricant oil can also be reliably reserved by a simple structure with a reduced number of components, and the reserved lubricant oil can be supplied to the sliding surface of the slide bearing 50 in the upper rotation region to achieve lubrication.
- the lubricant oil receiving pan 72 can also be used in combination with the lubricant oil receiving pan 71 described above.
- the lubricant oil receiving pans 71 and 72 in this embodiment can be V-shaped, arc-shaped or otherwise shaped to be bent toward the lubricant oil inlet 31 a , for example, in order that the reserved lubricant oil can be guided to the sliding surface with reliability.
- the lubricant oil receiving pans 71 and 72 described above may have the shapes shown in FIGS. 8 and 9 , for example.
- a lubricant oil receiving pan 71 A according to a first modification shown in FIG. 8 is substantially inverted-J shaped.
- the planet pin 30 moving in the clockwise direction shown by the hollow arrow in the drawing leaves the oil bath, the lubricant oil reserved in the lubricant oil receiving pan 71 A is guided along the inclined surface to the lubricant oil inlet 31 a.
- a lubricant oil receiving pan 71 B according to a second modification shown in FIG. 9 is substantially U-shaped.
- the lubricant oil reserved in the lubricant oil receiving pan 71 B is guided to the lubricant oil inlet 31 a .
- the lubricant oil receiving pan 71 B is substantially U-shaped or has a bowl-like shape, a sufficient amount of lubricant oil can be easily reserved.
- lubricant oil receiving pans 71 A and 71 B allow the lubricant to be reliably reserved by a simple structure with a reduced number of components and reliably supplied to the lower rotation region and the upper rotation region to achieve lubrication of the slide bearings 50 , as with the lubricant oil receiving pan 71 described above.
- FIGS. 10 and 11 a wind turbine generator according to a fourth embodiment of the present invention will be described with reference to FIGS. 10 and 11 .
- the same components as those in the embodiments described above are denoted by the same reference numerals, and detailed descriptions thereof will be omitted.
- a planet pin 30 A has oil supply grooves 30 b formed by cutting non-loaded surfaces thereof, and lubricant oil absorbing members 80 are inserted in the oil supply grooves 30 b .
- the planet pin 30 A is loaded only in the vertical direction as shown by the arrow F in FIG. 10( a ), and the opposite side surfaces of the planet pin 30 A are non-loaded surfaces.
- the non-loaded, opposite side parts of the planet pin 30 A having a circular cross section are removed to form spaces between the planet pin 30 A and the inner surface of the slide bearing 50 , which serve as the oil supply grooves 30 b.
- the lubricant oil absorbing members 80 made of sponge or the like inserted in the oil supply grooves 30 b described above absorbs and retains the lubricant oil during oil bathing and discharges the lubricant oil to achieve lubrication of the sliding part of the slide bearing 50 in the upper rotation region where no oil bathing occurs. In this way, a sufficient amount of lubricant oil absorbed and retained in the lubricant oil absorbing member 80 can be supplied to the sliding surface of the slide bearing 50 to reliably achieve lubrication.
- lubricant oil absorbing members 80 A having an oil supply groove 81 extending in the axial direction of the planet pin 30 A can be inserted into the oil supply grooves 30 b , as shown in FIG. 11 , for example.
- the oil supply groove 81 is open at one end to form an inlet opening 81 a that facilitates introduction of the lubricant oil during oil bathing and is closed by a blocking member 81 b at the other end.
- the lubricant oil absorbing member 80 A having the oil supply groove 81 can introduce and absorb the lubricant oil into the lubricant oil absorbing member 80 A in a shorter time and therefore can more easily reserve a sufficient amount of lubricant oil during oil bathing.
- the planet pin 30 A has the main lubricant oil channel 31 and the radial lubricant oil channel 32 formed therein.
- the main lubricant oil channel 31 and the radial lubricant oil channel 32 can be omitted, and the lubricant oil can be directly supplied from the lubricant oil absorbing members 80 or 80 A to the slide bearing 50 .
- the number of components can be reduced through simplification of the oil supply system and the cost can be reduced through simplification of the assembly. Therefore, the wind turbine generator 1 provided with the planetary-type planet gear box can be manufactured at low cost and improved in reliability and durability.
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Abstract
In a bearing oil supply structure for a wind turbine generator provided with a planetary-type planet gear box having a planet gear that rotates about a planet pin fixed to a carrier with a slide bearing interposed therebetween, lubrication of the slide bearing is achieved by supplying lubricant oil by using an oil bath in a lower rotation region and by supplying lubricant oil by injecting lubricant oil pressure-fed from a lubricant oil source through a nozzle in an upper rotation region.
Description
- This application claims benefit of Japanese Applications No. 2010-283420 filed in Japan on Dec. 20, 2010, the contents of which is hereby incorporated by its reference.
- 1. Field of the Invention
- The present invention relates to a bearing oil supply structure for a wind turbine generator applied to a bearing part of a planet gear box mechanism that steps up rotation of a rotor head and transfers the stepped-up rotation to a generator, for example.
- 2. Description of Related Art
- A wind turbine generator has a rotor head with blades that rotates under the force of wind hitting the blades, and a generator that is driven by the rotation of the rotor stepped up by a gear box to generate electric power.
- An example of the gear box that steps up the rotation of the rotor head is a planetary-type planet gear box mechanism. The planetary-type planet gear box mechanism has a plurality of planet gears attached to a carrier that rotates integrally with an input shaft, and the planet gears revolves in engagement with a sun gear that rotates integrally with an output shaft and an internal gear fixed to a housing of the gear box. That is, the planetary-type planet gear box mechanism steps up the number of rotation of the carrier coupled to the input shaft (the numbers of revolutions of the planet gears) according to the gear ratio among the planet gears, the sun gear and the internal gear, and outputs the stepped up rotation from the output shaft coupled to the sun gear.
- In the planetary-type planet gear box mechanism described above, each planet gear is rotatably supported on the carrier with a planet bearing interposed therebetween. The planet bearing is typically a roller bearing or a slide bearing. In the case where the slide bearing is used as the planet gear in such a planetary-type planet gear box mechanism, an oil supply channel is formed in the carrier to achieve lubrication in the upper rotation region where no oil bath can be used for lubrication.
- Besides, a lubrication system for a planet gear train is described in Japanese Translation of PCT International Application, Publication No. Hei 9-507284, for example. According to this conventional technique, lubricant oil is supplied to a channel formed in a journal pin from the outer surface of the pin and then guided through the channel to the surroundings of the pin to achieve the outer surface of the pin and the bores of the planet gears.
- The bearing oil supply structure that has slide bearings as the planet bearings of the planetary-type planet gear box mechanism and a carrier having an oil supply channel formed therein for lubrication, such as the conventional one described above, has a problem that it is a complicated structure with a large number of components and is expensive.
- In view of such circumstances, it is desirable that a wind turbine generator that incorporates slide bearings as planet bearings of a planetary-type planet gear box mechanism has a bearing oil supply structure that can be reduced in number of components through simplification of the oil supply system and in cost through simplification of the assembly.
- The present invention has been devised in view of the circumstances described above, and an object of the present invention is to provide a bearing oil supply structure for a wind turbine generator that can be reduced in number of components through simplification of the oil supply system thereof and in cost through simplification of the assembly thereof.
- In order to attain the object described above, the present invention provides the following solutions.
- A bearing oil supply structure according to a first aspect of the present invention is a bearing oil supply structure for a wind turbine generator comprising a planetary-type planet gear box having a planet gear that rotates about a planet pin fixed to a carrier with a slide bearing interposed therebetween, wherein lubrication of said slide bearing is achieved by supplying lubricant oil by using an oil bath in a lower rotation region and by supplying lubricant oil by injecting lubricant oil pressure-fed from a lubricant oil source through a nozzle in an upper rotation region.
- With the bearing oil supply structure for a wind turbine generator according to the first aspect of the present invention, since lubrication of the slide bearing is achieved by supplying lubricant oil by using an oil bath in a lower rotation region and by supplying lubricant oil by injecting lubricant oil pressure-fed from a lubricant oil source through a nozzle in an upper rotation region, the lubricant oil can be reliably supplied to achieve lubrication of the slide bearing in the lower rotation region and the upper rotation region by a simple structure with a reduced number of components.
- In the first aspect of the present invention, it is preferred that said planet pin has a main lubricant oil channel formed to extend in the axial direction form a lubricant oil inlet opening at one end and a radial lubricant oil channel formed to radially extend from the main lubricant oil channel to an outer pin surface, and the lubricant oil injected through said nozzle is supplied to a sliding part of said slide bearing through said lubricant oil inlet, said main lubricant oil channel and said radial lubricant oil channel. This allows the lubricant oil injected through the nozzle to be reliably supplied to the sliding surface of the slide bearing to achieve lubrication.
- In this case, a lubricant oil receiving pan is preferably provided at said lubricant oil inlet for receiving the lubricant oil injected through said nozzle and guiding the lubricant oil into said main lubricant oil channel. This allows the lubricant oil injected through the nozzle to be efficiently guided to the lubricant oil inlet and more reliably supplied to the sliding surface of the slide bearing to achieve lubrication.
- In the first aspect of the present invention, the lubricant oil injected through said nozzle may be directly supplied to said slide bearing. In this case also, the lubricant oil injected through the nozzle can be supplied to the sliding surface of the slide bearing to achieve lubrication.
- A bearing oil supply structure according to a second aspect of the present invention is a bearing oil supply structure for a wind turbine generator comprising a planetary-type planet gear box having a planet gear that rotates about a planet pin fixed to a carrier with a slide bearing interposed therebetween, wherein lubrication of said slide bearing is achieved by supplying lubricant oil by using an oil bath in a lower rotation region and by supplying lubricant oil reserved during oil bathing in an upper rotation region.
- With the bearing oil supply structure for a wind turbine generator according to the second aspect of the present invention, since lubrication of the slide bearing is achieved by supplying lubricant oil by using an oil bath in a lower rotation region and by supplying lubricant oil reserved during oil bathing in an upper rotation region, the lubricant oil can be reliably supplied to achieve lubrication of the slide bearing in the lower rotation region and the upper rotation region by a simple structure with a reduced number of components.
- In the second aspect of the present invention, said planet pin can have a main lubricant oil channel formed to extend in the axial direction form a lubricant oil inlet opening at one end and a radial lubricant oil channel formed to radially extend from the main lubricant oil channel to an outer pin surface, and a lubricant oil receiving pan can be provided at said lubricant oil inlet, so that lubricant oil scooped and reserved in said lubricant oil receiving pan during said oil bathing can be supplied to a sliding part of said slide bearing through said lubricant oil inlet, said main lubricant oil channel and said radial lubricant oil channel. This allows the lubricant oil to be reliably reserved and supplied to the lower rotation region and the upper rotation region to achieve lubrication of the slide bearing by a simple structure with a reduced number of components.
- In the second aspect of the present invention, a lubricant oil receiving pan can be provided in the vicinity of an end of said slide bearing, and the lubricant oil scooped and reserved in said lubricant oil receiving pan during said oil bathing can be directly supplied to said slide bearing. In this case, the reserved lubricant oil can be supplied to a sliding surface of the slide bearing to achieve lubrication.
- In the second aspect of the present invention, it is preferred that an oil supply groove is formed in said planet pin by cutting a non-loaded surface thereof, a lubricant oil absorbing member is inserted into the oil supply groove, and lubricant oil absorbed and reserved in said lubricant oil absorbing member during said oil bathing is supplied to the sliding part of said slide bearing. In this case, the lubricant oil absorbed and reserved in the lubricant oil absorbing member can be supplied to the sliding surface of the slide bearing to achieve lubrication.
- In this case, it is preferred that said lubricant oil absorbing member has an oil supply groove formed to extend in the axial direction of said planet pin, and the oil supply groove opens at one end and is closed at the other end. In this case, the lubricant oil can be introduced into and absorbed in the lubricant oil absorbing member in a shorter time.
- A wind turbine generator according to a third aspect of the present invention comprises a bearing oil supply structure according to the first or second aspect of the present invention.
- Since the wind turbine generator according to the third aspect of the present invention is provided with the bearing oil supply structure according to the first or second aspect of the present invention, the wind turbine generator is reliably and durable and is manufactured at low cost.
- According to the present invention summarized above, even for a wind turbine generator provided with a planetary-type planet gear box having a planet gear that rotates about a planet pin fixed to a carrier with an inexpensive slide bearing interposed therebetween, there can be provided a bearing oil supply structure for the wind turbine generator that can be reduced in number of components through simplification of the oil supply system and in cost through simplification of the assembly. Therefore, the present invention has a remarkable advantage that the wind turbine generator provided with the planetary-type planet gear box can be improved in reliability and durability at low cost.
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FIG. 1 is a cross-sectional view showing a configuration of essential parts of a bearing oil supply structure for a wind turbine generator according to a first embodiment of the present invention; -
FIG. 2 is a schematic diagram showing an example of a planetary-type planet gear box to which the bearing oil supply structure for the wind turbine generator according to the present invention is applied; -
FIG. 3 is a schematic diagram showing a planetary-type planet gear box mechanism of the planetary-type planet gear box shown inFIG. 2 viewed from the axial direction thereof; -
FIG. 4 is a side view of the wind turbine generator provided with a gear box to which a planet bearing structure according to the present invention is applied; -
FIG. 5 is a schematic cross-sectional view showing a configuration of essential parts in a nacelle of the wind turbine generator shown inFIG. 4 ; -
FIG. 6 is a cross-sectional view showing a configuration of essential parts of a bearing oil supply structure for a wind turbine generator according to a second embodiment of the present invention; -
FIG. 7 is a cross-sectional view showing a configuration of essential parts of a bearing oil supply structure for a wind turbine generator according to a third embodiment of the present invention; -
FIG. 8 is a front view of a first modification of a lubricant oil receiving pan shown inFIG. 7 , viewed in the axial direction; -
FIG. 9 is a front view of a second modification of the lubricant oil receiving pan shown inFIG. 7 , viewed in the axial direction; -
FIG. 10 are diagrams showing essential parts of a bearing oil supply structure for a wind turbine generator according to a fourth embodiment of the present invention, in whichFIG. 10( a) is a front view of a planet pin viewed in the axial direction, andFIG. 10( b) is a cross-sectional view taken along the line A-A inFIG. 10( a); and -
FIG. 11 are diagrams showing essential parts of a modification of the planet pin and lubricant oil absorbing members shown inFIG. 10 , in whichFIG. 11( a) is a front view of the planet pin and the lubricant oil absorbing members viewed in the axial direction, andFIG. 11( b) is a cross-sectional view taken along the line B-B inFIG. 11( a). - In the following, planet bearing structures of a wind turbine generator or the like according to embodiments of the present invention will be described with reference to the drawings.
- A bearing oil supply structure for a wind turbine generator according to the present invention is suitable for a gear box having a planetary-type planet gear box mechanism of a wind turbine generator and in particular a gear box that has slide bearings as planet bearings.
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FIG. 4 shows awind turbine generator 1 comprising a tower (referred to also as a pole) 2 standing on a base B, anacelle 3 installed on the upper end of thetower 2, and arotor head 4 provided on the front end of thenacelle 3 and supported so as to be rotatable about a substantially horizontal transverse axis of rotation. - The
rotor head 4 is provided with a plurality of (three, for example)blades 5 radially arranged about the axis of rotation. The force of wind hitting theblades 5 in the direction of the axis of rotation of therotor head 4 is converted into a mechanical power to make therotor head 4 rotate about the axis of rotation. - The
nacelle 3 is provided with an anemometer 7 for measuring the wind speed in the surroundings and an anemoscope 8 for measuring the wind direction at appropriate positions on the outer periphery thereof (on an upper part thereof, for example). - In the
nacelle 3, as shown inFIG. 5 , for example, agear box 10 coupled to therotor head 4 by amain shaft 9 and agenerator 12 coupled to anoutput shaft 11 of thegear box 10 are provided. That is, the number of rotations is stepped up as the rotation of therotor head 4 is transferred to theoutput shaft 11 of thegear box 10 to which therotor head 4 is coupled by themain shaft 9. Thegenerator 12 is driven at the number of rotations at the output side stepped up by thegear box 10 to generate electric power. - In the
nacelle 3, there is further provided awind turbine controller 13 for controlling various operations of thewind turbine generator 1. - The
gear box 10 described above is typically formed by a combination of a plurality of stages of step-up mechanisms. The number of rotations of themain shaft 9 serving as the input shaft is stepped up to the final number of output rotations of theoutput shaft 11 through a plurality of step-up stages. -
FIG. 2 is a schematic diagram showing an example of a gear box provided with the planetary-type planet gear box mechanism to which the bearing oil supply structure according to the present invention is applied, that is, a planetary-type planet gear box. In the drawing, the part enclosed by the dashed line is a low speed stage of the planetary-type planet gear box (referred to as a planetary-type gear box hereinafter) that performs a first-stage step-up. In this case, the number of rotations of themain shaft 9 is first stepped up by the planetary-type gear box 20 and then stepped up by amiddle speed stage 14 and ahigh speed stage 15 to the number of output rotations of theoutput shaft 11. In the drawing,reference numeral 16 denotes a coupling shaft for transferring the output of the low speed stage of the planetary-type planet gear box to themiddle speed stage 14, andreference numeral 17 denotes a coupling shaft for transferring the output of themiddle speed stage 14 to thehigh speed stage 15. -
FIG. 3 is a schematic diagram showing a planetary-type planet gear box mechanism of the planetary-type gear box 20 that performs the first-stage step-up of thegear box 10, viewed from the axial direction, as an example of the planet gear device to which the bearing oil supply structure according to the present invention is applied. - In the case where the planetary-
type gear box 20 is used as the gear box of thewind turbine generator 1, acarrier 21 of the planetary-type gear box 20 is coupled to themain shaft 9 and rotates with themain shaft 9. In the shown example, threeplanet pins 30 are fixed to thecarrier 21, and aplanet gear 40 is rotatably attached to eachplanet pin 30 with aslide bearing 50 and a bearing back metal 51 of theslide bearing 50 interposed therebetween. - In the planetary-
type gear box 20, the threeplanet gears 40 are attached to thecarrier 21 that rotates integrally with themain shaft 9 serving as the input shaft, and the planet gears 40 revolve in engagement with asun gear 22 that rotates integrally with the coupling shaft (output shaft) 16 and aninternal gear 24 fixed to ahousing 23. That is, the planetary-type gear box 20 is a device that steps up the number of rotations of thecarrier 21 coupled to the main shaft (input shaft) 9 (or the numbers of revolutions of the planet gears) according to the gear ratio among the planet gears 40, thesun gear 22 and theinternal gear 24, and the stepped up number of revolutions is output to the two-stage step-up mechanism comprising themiddle speed stage 14 and thehigh speed stage 15 through thecoupling shaft 16 coupled to thesun gear 22. - The
housing 23 in which thecarrier 21 and the planet gears 40 revolve is filled with lubricant oil up to the level of an oil bath surface (lubricant oil surface) Lo shown inFIG. 3 , for example. The level of the oil bath surface Lo is preferably high enough for at least an axial boreinner surface 40 a of each revolvingplanet gear 40 to be immersed in the lubricant oil. - As described above, in the
gear box 10 of thewind turbine generator 1, theslide bearing 50 mounted on the axial boreinner surface 40 a of theplanet gear 40 rotates with theplanet gear 40 about theplanet pin 30 fixed to thecarrier 21. - The bearing oil supply structure according to this embodiment shown in
FIG. 1 is applied to the planetary-type planet gear box in which the planet gears 40 rotates about the planet pins 30 fixed to thecarrier 21 through the action of theslide bearings 50. Lubrication of theslide bearings 50 is achieved by supplying lubricant oil by using an oil bath in a lower rotation region and by supplying lubricant oil by injecting lubricant oil pressure-fed from a lubricant oil source through anozzle 60 in an upper rotation region. - In the lower rotation region, oil supply is achieved by the planet pins 30, the planet gears 40 and the
slide bearings 50 revolving with themain shaft 9 and thecarrier 21 passing through the lubricant oil in thehousing 23. That is, the planet pins 30, the planet gears 40 and theslide bearings 50 are immersed in the lubricant oil when they go below the oil bath surface Lo during revolution, and in this oil-immersed state, the sliding surface or the like of theslide bearing 50 is supplied with the lubricant oil. - In the upper rotation region, oil supply is achieved by injecting lubricant oil pressure-fed from a lubricant oil source (not shown, a lubricant oil pump provided on the
nacelle 3, for example) through thenozzle 60 fixed to thehousing 23. In this case, one ormore nozzles 60 are provided in the rotational direction (circumferential direction) so that the lubricant oil can be injected at appropriate times to the planet pins 30, the planet gears 40 and theslide bearings 50 revolving in the space above the oil bath surface Lo in thehousing 23. - The
planet pin 30 has a mainlubricant oil channel 31 extending in the axial direction from alubricant oil inlet 31 a that opens at one end thereof and one or more radiallubricant oil channels 32 extending radially from the mainlubricant oil channel 31 to anouter pin surface 30 a. The mainlubricant oil channel 31 shown is formed on the central axis of theplanet pin 30, thelubricant oil inlet 31 a of the mainlubricant oil channel 31 opens in the end closer to thecarrier 21, and an outlet opening of the mainlubricant oil channel 31 formed in the end closer to themiddle speed stage 14 is closed by a blockingmember 31 b. - The lubricant oil is injected through the
nozzle 60 described above to thelubricant oil inlet 31 a of the mainlubricant oil channel 31 of theplanet pin 30 with these lubricant oil channels. Although the lubricant oil can be constantly injected through thenozzle 60, the lubricant oil is preferably intermittently injected in synchronization with passage of the targetlubricant oil inlet 31 a. - The lubricant oil injected through the
nozzle 60 enters the inside of the mainlubricant oil channel 31 through thelubricant oil inlet 31 a and flows toward the outlet opening closed by the blockingmember 31 b under the pressure of the injection. Then, the lubricant oil is supplied to the sliding part of theslide bearing 50 in contact with theouter pin surface 30 a through the radiallubricant oil channel 32 branched midway from the mainlubricant oil channel 31. That is, in the upper rotation region that includes no oil bath like the lower rotation region, lubrication is achieved by forced oil supply, which involves injecting the lubricant oil to thelubricant oil inlet 31 a through thenozzle 60 to supply the lubricant oil to between theouter pin surface 30 a and the inner surface of theslide bearing 50 through the radiallubricant oil channel 32. - As described above, lubrication of the
slide bearings 50 is achieved by supplying the lubricant oil by using the oil bath in the lower rotation region and by supplying the lubricant oil by injecting the lubricant oil pressure-fed from the lubricant oil source through thenozzle 60 in the upper rotation region. As a result, even in the upper rotation region where no oil bath can be used for lubrication, lubrication can be reliably achieved by supplying the lubricant oil to the sliding surfaces of theslide bearings 50 by injecting the lubricant oil through thenozzle 60. Therefore, when the planet gears 40 revolve in engagement with theinternal gear 24 in thehousing 23, lubrication between the planet pins 30 and theslide bearings 50 is achieved with reliability. Since lubrication of theslide bearings 50 is achieved with reliability by a simple structure with a reduced number of components both in the lower rotation region and the upper rotation region, high reliability and high durability can be achieved. - In the embodiment described above, the lubricant oil is injected to the
lubricant oil inlet 31 a through thenozzle 60. However, as with anozzle 60A shown inFIG. 1 , for example, the lubricant oil may be injected to theslide bearing 50. If such anozzle 60A is used, lubrication is achieved by directly supplying oil to the sliding surface of theslide bearing 50. - Although the
nozzle 60A can be used by itself, thenozzle 60A may be used in combination with thenozzle 60 according to the embodiment described above. - Next, a wind turbine generator according to a second embodiment of the present invention will be described with reference to
FIG. 6 . The same components as those in the embodiment described above are denoted by the same reference numerals, and detailed descriptions thereof will be omitted. - According to this embodiment, as shown in
FIG. 6 , for example, a lubricantoil receiving pan 70 is provided at thelubricant oil inlet 31 a for receiving the lubricant oil injected through anozzle 60B and guiding the lubricant oil into the mainlubricant oil channel 31. The lubricantoil receiving pan 70 has the shape of a gutter formed by bending a plate into a substantially L-shaped cross section, for example, so that the lubricantoil receiving pan 70 accumulates the lubricant oil injected downward through thenozzle 60B with reliability and guides the lubricant oil into the mainlubricant oil channel 31. Viewed from the axial direction of coupling to themain shaft 9, the lubricantoil receiving pan 70 can be V-shaped, arc-shaped or otherwise shaped to be bent toward thelubricant oil inlet 31 a, for example, in order that the accumulated lubricant oil can be guided to the sliding surface with reliability. - With such a configuration, the lubricant oil injected through the
nozzle 60B can be efficiently and reliably guided into thelubricant oil inlet 31 a and reliably supplied to the sliding surface of theslide bearing 50 to achieve lubrication. - Although the
nozzle 60B shown in the drawing is installed so as to inject the lubricant oil substantially vertically, the direction of thenozzle 60B is not particularly limited as far as the lubricantoil receiving pan 70 can reliably accumulate the lubricant oil, and thenozzle 60B may be installed so as to inject the lubricant oil toward thelubricant oil inlet 31 a, as with thenozzle 60 shown inFIG. 1 , for example. - In addition, the shape of the lubricant
oil receiving pan 70 provided in this embodiment is not limited to the substantially L-shaped cross section described above, and the lubricantoil receiving pan 70 may have the shape of a gutter having an arc-shaped cross section according to a modification. - Next, a wind turbine generator according to a third embodiment of the present invention will be described with reference to
FIGS. 7 to 9 . The same components as those in the embodiments described above are denoted by the same reference numerals, and detailed descriptions thereof will be omitted. - According to this embodiment, lubrication of the slide bearings is achieved by supplying lubricant oil by using an oil bath in the lower rotation region and by supplying lubricant oil reserved during oil bathing in the upper rotation region. That is, in this embodiment, the forced lubrication by injecting the lubricant oil through the
nozzle 60 described above is not performed. - More specifically, according to the embodiment shown in
FIG. 7 , the same mainlubricant oil channel 31 and radiallubricant oil channel 32 as those in the embodiment described above are formed in theplanet pin 30. At thelubricant oil inlet 31 a, a lubricantoil receiving pan 71 having a substantially L-shaped cross section is provided in an inverted orientation compared with the lubricantoil receiving pan 70 described above. The lubricantoil receiving pan 71 is intended to scoop the lubricant oil during oil bathing and therefore is open upward when immersed in the lubricant oil. - The lubricant
oil receiving pan 71 serves as a dipper to scoop and reserve the lubricant oil during oil bathing, and the lubricant oil scooped by and reserved in the lubricantoil receiving pan 71 flows into the mainlubricant oil channel 31 through thelubricant oil inlet 31 a and then is supplied to the sliding surface of theslide bearing 32 through the radiallubricant oil channel 32. That is, the lubricantoil receiving pan 71 in this embodiment is open upward during oil bathing to scoop the lubricant oil and reserve the lubricant oil to be supplied to the upper rotation region. - With such a bearing oil supply structure, the lubricant oil is supplied to the sliding parts of the
slide bearings 50 through thelubricant oil inlet 31 a, the mainlubricant oil channel 31 and the radiallubricant oil channel 32, and no actuator such as a pump is needed. Therefore, the lubricant oil can be reliably reserved by a simple structure with a reduced number of components and can be reliably supplied both to the lower rotation region and the upper rotation region to achieve lubrication of theslide bearings 50. - The lubricant
oil receiving pan 71 in this embodiment can also be replaced with a lubricantoil receiving pan 72 attached to thecarrier 21 at a position close to one end of theslide bearing 50. The lubricantoil receiving pan 72 is intended to supply the lubricant oil scooped and reserved during oil bathing directly to the slide bearing as with thenozzle 60A described above. With such a configuration, the lubricant oil can also be reliably reserved by a simple structure with a reduced number of components, and the reserved lubricant oil can be supplied to the sliding surface of theslide bearing 50 in the upper rotation region to achieve lubrication. - The lubricant
oil receiving pan 72 can also be used in combination with the lubricantoil receiving pan 71 described above. - Viewed from the axial direction of coupling to the main shaft 9 (that is, in front view), the lubricant oil receiving pans 71 and 72 in this embodiment can be V-shaped, arc-shaped or otherwise shaped to be bent toward the
lubricant oil inlet 31 a, for example, in order that the reserved lubricant oil can be guided to the sliding surface with reliability. - Alternatively, the lubricant oil receiving pans 71 and 72 described above may have the shapes shown in
FIGS. 8 and 9 , for example. A lubricantoil receiving pan 71A according to a first modification shown inFIG. 8 is substantially inverted-J shaped. When theplanet pin 30 moving in the clockwise direction shown by the hollow arrow in the drawing leaves the oil bath, the lubricant oil reserved in the lubricantoil receiving pan 71A is guided along the inclined surface to thelubricant oil inlet 31 a. - A lubricant
oil receiving pan 71B according to a second modification shown inFIG. 9 is substantially U-shaped. When theplanet pin 30 moving in the clockwise direction shown by the hollow arrow in the drawing leaves the oil bath, the lubricant oil reserved in the lubricantoil receiving pan 71B is guided to thelubricant oil inlet 31 a. In this case, since the lubricantoil receiving pan 71B is substantially U-shaped or has a bowl-like shape, a sufficient amount of lubricant oil can be easily reserved. - These lubricant oil receiving pans 71A and 71B according to the modifications allow the lubricant to be reliably reserved by a simple structure with a reduced number of components and reliably supplied to the lower rotation region and the upper rotation region to achieve lubrication of the
slide bearings 50, as with the lubricantoil receiving pan 71 described above. - Finally, a wind turbine generator according to a fourth embodiment of the present invention will be described with reference to
FIGS. 10 and 11 . The same components as those in the embodiments described above are denoted by the same reference numerals, and detailed descriptions thereof will be omitted. - According to this embodiment, a
planet pin 30A hasoil supply grooves 30 b formed by cutting non-loaded surfaces thereof, and lubricantoil absorbing members 80 are inserted in theoil supply grooves 30 b. Theplanet pin 30A is loaded only in the vertical direction as shown by the arrow F inFIG. 10( a), and the opposite side surfaces of theplanet pin 30A are non-loaded surfaces. Thus, as shown in the drawing, the non-loaded, opposite side parts of theplanet pin 30A having a circular cross section are removed to form spaces between theplanet pin 30A and the inner surface of theslide bearing 50, which serve as theoil supply grooves 30 b. - The lubricant
oil absorbing members 80 made of sponge or the like inserted in theoil supply grooves 30 b described above absorbs and retains the lubricant oil during oil bathing and discharges the lubricant oil to achieve lubrication of the sliding part of theslide bearing 50 in the upper rotation region where no oil bathing occurs. In this way, a sufficient amount of lubricant oil absorbed and retained in the lubricantoil absorbing member 80 can be supplied to the sliding surface of theslide bearing 50 to reliably achieve lubrication. - According to a modification, as an alternative to the lubricant
oil absorbing members 80 described above, lubricantoil absorbing members 80A having anoil supply groove 81 extending in the axial direction of theplanet pin 30A can be inserted into theoil supply grooves 30 b, as shown inFIG. 11 , for example. Theoil supply groove 81 is open at one end to form an inlet opening 81 a that facilitates introduction of the lubricant oil during oil bathing and is closed by a blockingmember 81 b at the other end. - The lubricant
oil absorbing member 80A having theoil supply groove 81 can introduce and absorb the lubricant oil into the lubricantoil absorbing member 80A in a shorter time and therefore can more easily reserve a sufficient amount of lubricant oil during oil bathing. - In the embodiment and the modification described above, the
planet pin 30A has the mainlubricant oil channel 31 and the radiallubricant oil channel 32 formed therein. However, with the configuration using the lubricantoil absorbing members lubricant oil channel 31 and the radiallubricant oil channel 32 can be omitted, and the lubricant oil can be directly supplied from the lubricantoil absorbing members slide bearing 50. - According to the embodiments of the present invention described above, as to the bearing oil supply structure provided with the planetary-type planet gear box in which the
planet gear 40 rotates about theplanet pin carrier 21 with theinexpensive slide bearing 50 interposed therebetween, the number of components can be reduced through simplification of the oil supply system and the cost can be reduced through simplification of the assembly. Therefore, thewind turbine generator 1 provided with the planetary-type planet gear box can be manufactured at low cost and improved in reliability and durability. - Note that the present invention is not limited to the embodiments described above and can be modified as required without departing form the spirit of the present invention.
Claims (12)
1. A bearing oil supply structure for a wind turbine generator comprising a planetary-type planet gear box having a planet gear that rotates about a planet pin fixed to a carrier with a slide bearing interposed therebetween,
wherein lubrication of said slide bearing is achieved by supplying lubricant oil by using an oil bath in a lower rotation region and by supplying lubricant oil by injecting lubricant oil pressure-fed from a lubricant oil source through a nozzle in an upper rotation region.
2. The bearing oil supply structure for a wind turbine generator according to claim 1 , wherein said planet pin has a main lubricant oil channel formed to extend in the axial direction form a lubricant oil inlet opening at one end and a radial lubricant oil channel formed to radially extend from the main lubricant oil channel to an outer pin surface, and
the lubricant oil injected through said nozzle is supplied to a sliding part of said slide bearing through said lubricant oil inlet, said main lubricant oil channel and said radial lubricant oil channel.
3. The bearing oil supply structure for a wind turbine generator according to claim 1 , wherein the lubricant oil injected through said nozzle is directly supplied to said slide bearing.
4. The bearing oil supply structure for a wind turbine generator according to claim 2 , wherein the lubricant oil injected through said nozzle is directly supplied to said slide bearing.
5. The bearing oil supply structure for a wind turbine generator according to claim 2 , wherein a lubricant oil receiving pan is provided at said lubricant oil inlet for receiving the lubricant oil injected through said nozzle and guiding the lubricant oil into said main lubricant oil channel.
6. A bearing oil supply structure for a wind turbine generator comprising a planetary-type planet gear box having a planet gear that rotates about a planet pin fixed to a carrier with a slide bearing interposed therebetween,
wherein lubrication of said slide bearing is achieved by supplying lubricant oil by using an oil bath in a lower rotation region and by supplying lubricant oil reserved during oil bathing in an upper rotation region.
7. The bearing oil supply structure for a wind turbine generator according to claim 6 , wherein said planet pin has a main lubricant oil channel formed to extend in the axial direction form a lubricant oil inlet opening at one end and a radial lubricant oil channel formed to radially extend from the main lubricant oil channel to an outer pin surface, and
a lubricant oil receiving pan is provided at said lubricant oil inlet, so that lubricant oil scooped and reserved in said lubricant oil receiving pan during said oil bathing is supplied to a sliding part of said slide bearing through said lubricant oil inlet, said main lubricant oil channel and said radial lubricant oil channel.
8. The bearing oil supply structure for a wind turbine generator according to claim 6 , wherein a lubricant oil receiving pan is provided in the vicinity of an end of said slide bearing, and the lubricant oil scooped and reserved in said lubricant oil receiving pan during said oil bathing is directly supplied to said slide bearing.
9. The bearing oil supply structure for a wind turbine generator according to claim 7 , wherein a lubricant oil receiving pan is provided in the vicinity of an end of said slide bearing, and the lubricant oil scooped and reserved in said lubricant oil receiving pan during said oil bathing is directly supplied to said slide bearing.
10. The bearing oil supply structure for a wind turbine generator according to claim 6 , wherein an oil supply groove is formed in said planet pin by cutting a non-loaded surface thereof, a lubricant oil absorbing member is inserted into the oil supply groove, and lubricant oil absorbed and reserved in said lubricant oil absorbing member during said oil bathing is supplied to a sliding part of said slide bearing.
11. The bearing oil supply structure for a wind turbine generator according to claim 10 , wherein said lubricant oil absorbing member has an oil supply groove formed to extend in the axial direction of said planet pin, and the oil supply groove opens at one end and is closed at the other end.
12. A wind turbine generator comprising a bearing oil supply structure according to claim 1 .
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
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JP2010283420A JP5422547B2 (en) | 2010-12-20 | 2010-12-20 | Bearing unit oil supply structure for wind turbine generator |
JP2010-283420 | 2010-12-20 |
Publications (1)
Publication Number | Publication Date |
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US20120157256A1 true US20120157256A1 (en) | 2012-06-21 |
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Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
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US13/327,980 Abandoned US20120157256A1 (en) | 2010-12-20 | 2011-12-16 | Bearing oil supply structure for wind turbine generator |
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US (1) | US20120157256A1 (en) |
JP (1) | JP5422547B2 (en) |
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US20130225353A1 (en) * | 2012-02-23 | 2013-08-29 | Snecma | Device for lubricating an epicycloidal reduction gear |
CN104061320A (en) * | 2013-03-21 | 2014-09-24 | 本田技研工业株式会社 | Pinion lubrication structure |
US20140294558A1 (en) * | 2012-09-20 | 2014-10-02 | United Technologies Corporation | Turbomachine fluid delivery manifold and system |
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US20150114758A1 (en) * | 2012-07-10 | 2015-04-30 | Universitat Politècnica De Catalunya | Method and device for preventing excessive wear in gear assemblies |
FR3018861A1 (en) * | 2014-03-24 | 2015-09-25 | Snecma | TRANSMISSION ASSEMBLY COMPRISING A TRANSMISSION MEMBER AND AN OIL DISTRIBUTION SYSTEM |
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US10316826B2 (en) * | 2014-04-15 | 2019-06-11 | Siemens Aktiengesellschaft | Drive system of a wind turbine |
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JP2012132333A (en) | 2012-07-12 |
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